Live STED imaging of functional neuroanatomy.

IF 13.1 1区 生物学 Q1 BIOCHEMICAL RESEARCH METHODS
Misa Arizono, Agata Idziak, U Valentin Nägerl
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Abstract

In the mammalian brain, a large network of excitable and modulatory cells efficiently processes, analyzes and stores vast amounts of information. The brain's anatomy influences the flow of neural information between neurons and glia, from which all thought, emotion and action arises. Consequently, one of the grand challenges in neuroscience is to uncover the finest structural details of the brain in the context of its overall architecture. Recent developments in microscopy and biosensors have enabled the investigation of brain microstructure and function with unprecedented specificity and resolution, dendritic spines being an exemplary case, which has provided deep insights into neuronal mechanisms of higher brain function, such as learning and memory. As diffraction-limited light microscopy methods cannot resolve the fine details of brain cells (the 'anatomical ground truth'), electron microscopy is used instead to contextualize functional signals. This approach can be quite unsatisfying given the fragility and dynamic nature of the structures under investigation. We have recently developed a method for combining super-resolution stimulated emission depletion microscopy with functional measurements in brain slices, offering nanoscale resolution in functioning brain structures. We describe how to concurrently perform morphological and functional imaging with a confocal STED microscope. Specifically, the procedure guides the user on how to record astrocytic Ca2+ signals at tripartite synapses, outlining a framework for analyzing structure-function relationships of brain cells at nanoscale resolution. The imaging requires 2-3 h and the image analysis between 2 h and 2 d.

功能神经解剖学的实时 STED 成像。
在哺乳动物的大脑中,一个由兴奋和调节细胞组成的庞大网络有效地处理、分析和存储大量信息。大脑的解剖结构影响着神经元和神经胶质之间的神经信息流动,所有的思想、情感和行动都是由此产生的。因此,神经科学的一个重大挑战是在大脑整体结构的背景下揭示大脑最精细的结构细节。显微镜和生物传感器的最新发展使得对大脑微观结构和功能的研究具有前所未有的特异性和分辨率,树突棘就是一个典型的例子,它为研究高级大脑功能(如学习和记忆)的神经元机制提供了深刻的见解。由于衍射有限的光学显微镜方法无法解析脑细胞的精细细节(“解剖学基础真相”),因此使用电子显微镜来代替功能信号。考虑到所调查结构的脆弱性和动态性,这种方法可能相当不令人满意。我们最近开发了一种方法,将超分辨率受激发射耗尽显微镜与脑切片的功能测量相结合,为功能大脑结构提供纳米级分辨率。我们描述了如何同时执行形态学和功能成像与共聚焦显微镜。具体来说,该程序指导用户如何在三方突触记录星形细胞Ca2+信号,概述了在纳米级分辨率下分析脑细胞结构-功能关系的框架。成像需要2-3小时,图像分析需要2- 2小时。
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来源期刊
Nature Protocols
Nature Protocols 生物-生化研究方法
CiteScore
29.10
自引率
0.70%
发文量
128
审稿时长
4 months
期刊介绍: Nature Protocols focuses on publishing protocols used to address significant biological and biomedical science research questions, including methods grounded in physics and chemistry with practical applications to biological problems. The journal caters to a primary audience of research scientists and, as such, exclusively publishes protocols with research applications. Protocols primarily aimed at influencing patient management and treatment decisions are not featured. The specific techniques covered encompass a wide range, including but not limited to: Biochemistry, Cell biology, Cell culture, Chemical modification, Computational biology, Developmental biology, Epigenomics, Genetic analysis, Genetic modification, Genomics, Imaging, Immunology, Isolation, purification, and separation, Lipidomics, Metabolomics, Microbiology, Model organisms, Nanotechnology, Neuroscience, Nucleic-acid-based molecular biology, Pharmacology, Plant biology, Protein analysis, Proteomics, Spectroscopy, Structural biology, Synthetic chemistry, Tissue culture, Toxicology, and Virology.
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